EP3728132A1 - A lithium, nickel, manganese mixed oxide compound and electrode comprising the same - Google Patents
A lithium, nickel, manganese mixed oxide compound and electrode comprising the sameInfo
- Publication number
- EP3728132A1 EP3728132A1 EP18829434.2A EP18829434A EP3728132A1 EP 3728132 A1 EP3728132 A1 EP 3728132A1 EP 18829434 A EP18829434 A EP 18829434A EP 3728132 A1 EP3728132 A1 EP 3728132A1
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- Prior art keywords
- lithium
- equal
- nickel
- electrode
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- H01M4/36—Selection of substances as active materials, active masses, active liquids
- H01M4/48—Selection of substances as active materials, active masses, active liquids of inorganic oxides or hydroxides
- H01M4/52—Selection of substances as active materials, active masses, active liquids of inorganic oxides or hydroxides of nickel, cobalt or iron
- H01M4/525—Selection of substances as active materials, active masses, active liquids of inorganic oxides or hydroxides of nickel, cobalt or iron of mixed oxides or hydroxides containing iron, cobalt or nickel for inserting or intercalating light metals, e.g. LiNiO2, LiCoO2 or LiCoOxFy
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- C01G45/00—Compounds of manganese
- C01G45/12—Complex oxides containing manganese and at least one other metal element
- C01G45/1221—Manganates or manganites with trivalent manganese, tetravalent manganese or mixtures thereof
- C01G45/1228—Manganates or manganites with trivalent manganese, tetravalent manganese or mixtures thereof of the type (MnO2)-, e.g. LiMnO2 or Li(MxMn1-x)O2
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- C01G45/1221—Manganates or manganites with trivalent manganese, tetravalent manganese or mixtures thereof
- C01G45/125—Manganates or manganites with trivalent manganese, tetravalent manganese or mixtures thereof of the type (MnO3)n-, e.g. CaMnO3
- C01G45/1257—Manganates or manganites with trivalent manganese, tetravalent manganese or mixtures thereof of the type (MnO3)n-, e.g. CaMnO3 containing lithium, e.g. Li2MnO3 or Li2(MxMn1-x)O3
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- C01G53/42—Complex oxides containing nickel and at least one other metal element containing alkali metals, e.g. LiNiO2
- C01G53/44—Complex oxides containing nickel and at least one other metal element containing alkali metals, e.g. LiNiO2 containing manganese
- C01G53/50—Complex oxides containing nickel and at least one other metal element containing alkali metals, e.g. LiNiO2 containing manganese of the type (MnO2)n-, e.g. Li(NixMn1-x)O2 or Li(MyNixMn1-x-y)O2
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- H01M4/50—Selection of substances as active materials, active masses, active liquids of inorganic oxides or hydroxides of manganese
- H01M4/505—Selection of substances as active materials, active masses, active liquids of inorganic oxides or hydroxides of manganese of mixed oxides or hydroxides containing manganese for inserting or intercalating light metals, e.g. LiMn2O4 or LiMn2OxFy
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- H01M2004/026—Electrodes composed of, or comprising, active material characterised by the polarity
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Definitions
- the present invention relates to a set of electroactive cathode compounds. More specifically the present invention relates to a set of high capacity lithium-rich NM compounds.
- Lithium rich blends of cathode materials containing blends of nickel manganese cobalt oxide offer a trade-off between safety and energy density. It is understood that charge is stored in the transition metal cations within such cathode materials. It has been suggested that the capacity, and therefore energy density, of cathode materials could be significantly increased if charge could be stored on anions (for example oxygen) reducing the need for such high amounts of heavy transition metal ions.
- the present invention provides a compound of the general formula: Li( 4 2x ⁇ Ni x Mn ⁇ 2 x ⁇ 0 2 wherein x hiis 3 V3lue greater th in 0.06 3nd less ecjuiil to or less th in 0.4.
- the compounds of the present invention exhibit improved stability during electrochemical cycling when compared to the transition metal substituted NMC lithium rich materials of the prior art.
- the evolution of molecular oxygen is ubiquitous with third row lithium-rich materials transition metal oxides where lithium has been exchanged for some of the transition metal ions (Lii +x Mi -x 0 2 , where M is Ti, V, Cr, Mn, Fe, Co, Ni, Cu or Zn).
- These materials generally rely on oxygen redox to improve their charge capacity properties.
- Homogenous materials can suffer from molecular oxygen escaping from the crystal structure during cycling due to redox of the oxide anion. In turn, this reduces the capacity and useful lifetime of the material.
- the material of the present invention has improved capacity which is maintained over numerous cycles.
- x i.e. the nickel content
- x may be equal to or greater than 0.12.
- x may be equal to or greater than 0.2. It has been demonstrated that capacity of the material is significantly improved when x is equal to or is greater than 0.12, and is further improve when the value of x is equal to 0.2.
- x may be equal to or less than 0.4. It is understood that the capacity of the material declines to expected levels above this threshold value of 0.4. It has been demonstrated that improved capacity is achieved when x is 0.3. More specifically, the value of x could be said to be greater than 0.06 and equal to or less than 0.4. More specifically, the value of x could be said to be equal to or greater than 0.12 and equal to or less than 0.4. Materials within this broad range show an improved capacity. In further examples of improved materials within this broad range, the value of x may be greater than 0.06 and equal to or less than 0.12.
- the range of x may be a greater than 0.2. It has been demonstrated that material with a stoichiometric nickel content of above 0.2 has the surprising benefit of reducing the amount of molecular oxygen gas evolved during a charge/discharge cycle as well as having an improved charge capacity. More particularly, this range may be defined as x being greater than 0.2 and equal to or less than 0.4. Even more particularly this range could be defined as x being equal to or greater than 0.3 equal to or less than 0.4. Most particularly, x has a value of either 0.3 or 0.4.
- the compound may be defined as having a layered structure. Typically layered structures have been shown to have the highest energy density.
- the material can be further defined using the general formula aLi 2 Mn0 3 . (l-a)LiNio .5 Mno .5 0 2 such that a may be less than 0.88, a may also be equal to or greater than 0.2. More particularly, a is equal or greater than 0.2 and less than 0.88. Even more particularly, a is equal or greater than 0.2 and equal to or less than 0.76.
- the material may be OALi MnCF . OALiNio . sMno . sCE, or the material may be 0.2Li 2 MnO 3 .
- the present invention provides an electrode comprising the compound of the first aspect.
- the electrode may comprise 3 fractions.
- the first is the compound of the present invention as previously described (in a variety of mass percentages from 60-98%, however, typically 70, 75, 80, 90 and 95%).
- the second fraction of the electrode comprises electroactive additives such as carbon, for example, Super P (RTM) and Carbon black, which comprises 60-80 % of the mass fraction remaining excluding the first fraction.
- the third fraction is typically a polymeric binder such as PVDF, PTFE, NaCMC and NaAlginate. In some case additional fractions maybe included and the overall percentages may change.
- the overall electrochemical performance of the cathode material can be improved by the introduction of electroactive additives, and the structural properties of the resulting cathode can also be improved by adding material that improves cohesion of the cathode material and adhesion of the material to particular substrates.
- the present invention provides an electrochemical cell comprising a positive electrode according to the description above, an electrolyte and a negative electrode (anode).
- Figure 1 shows powder X-ray Diffraction patterns of the synthesised materials in accordance with Example 1 compared with the calculated patterns of the Cl 2/m and R-3m symmetry lattice shown at the bottom and top of the figure respectively;
- Figure 2 shows 6 Li MAS-NMR spectra collected on synthesised materials in accordance with Example 1. The spectra are presented in a stacked fashion with increasing nickel doping going from bottom up;
- Figure 3 shows first cycle galvanostatic load curves for the synthesised materials in accordance with Example 1.
- Figure 4 shows OEMS analysis of a set of the synthesised materials in accordance with Example 1
- Example 1 The materials according to Example 1 were examined with the two techniques: Powder X-Ray Diffraction (PXRD) which was carried out utilising a Rigaku SmartLab (RTM) equipped with a 9 kW Cu rotating anode; and MAS-NMR spectra were collected on the materials with a Bruker Avance III 400WD magnet.
- PXRD Powder X-Ray Diffraction
- RTM Rigaku SmartLab
- Figure 1 shows in the right panel: Powder X-ray Diffraction patterns of the synthesised materials compared with the calculated patterns of the Cl2/m and R-3m symmetry lattice shown at the bottom and top of the figure respectively. On the left-hand side the structures for the Cl2/m and R-3m are reported. It is possible to observe the presence of transition metal ordering around lithium in the transition metal layer for the structure with Cl 2/m symmetry. The enlargement shows the details of the reflections associated with the cation ordering in the transition metal layer that is lost as the nickel content increases.
- Ni and Li have a similar atomic radius in comparison to the Ni will preferentially occupy lithium sites. Since the differential scattering cross section for X-rays of nickel and manganese are very close the ordering of the ions becomes less easy to resolve with X-rays and the peaks in the 20-30 degree range are lost. No presence of extra-peaks due to impurities was observed.
- MAS-NMR spectra were collected for the NMR-active isotope 6 Li on the whole series of materials.
- the normalized spectra in Figure 2 show the presence of two signals, centered at 1550 and 780 ppm, corresponding to the two sites for lithium ions in the structure.
- the resonance centred at 1550 ppm is attributed to lithium belonging to [LiMn 6 ] and [LiMn 5 Ni]/[LiMn 5 Li] configurations, within the transition metal layer.
- the resonance at 780 ppm is due to lithium in the lithium layer.
- a progressive loss of sharpness can be observed as the nickel content is increased although the chemical shift (i.e. the peaks positions) remains the same for all the materials.
- This result could be explained through two main phenomena: the generation of new local environments for lithium as nickel is progressively substituted to lithium and manganese in the lattice; and/or a higher concentration of stacking faults in the materials with high nickel content. In both cases the long- range order is broken leading to a progressive broadening of the NMR resonances.
- Example 1 The materials according to Example 1 were characterised electrochemically through galvanostatic cycling performed with a BioLogic VMP3 and a Maccor 4600 series potentiostats. All the samples were assembled into stainless steel coincells against metallic lithium and cycled between 2 and 4.8 V vs. Li + /Li for 100 cycles at a current rate of 50 mAg-l.
- the first cycle presents the lowest coulombic efficiency value due to the presence of the high potential plateau which is not reversible.
- the coulombic efficiencies appear to quickly improve from the first cycle values, around 60-70%, to values higher than 98% within the first five cycles.
- Each graph shows the galvanostatic curve during the first two cycles (top lines in each graph), the oxygen trace, and the carbon dioxide trace for each material.
- the right y-axis represents the electrode potential while the left y-axis the gas release rate expressed as moles of gas per minute per mole of active material, both axis reported as function of lithium equivalents.
- Argon was used as carrier gas with a flux rate of 0.7 mL/min and the electrode was cycled against metallic lithium at a rate of 15 mAg 1 between 2 and 4.8 V vs. Li + /Li° for all the materials.
- the electrolyte employed was a 1M solution of LiPF 6 in propylene carbonate.
- CO2 is detected first in all cases, peaking at the beginning of the high potential plateau (around 4.5 V vs. Li + /Li°) region and progressively decreasing until the end of charge.
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Abstract
A compound of the general formula: (i) wherein x has a value greater than 0.06 and equal to or less than 0.4. The compound is also formulated into a positive electrode for use in an electrochemical cell.
Description
A LITHIUM, NICKEL, MANGANESE MIXED OXIDE COMPOUND AND ELECTRODE
COMPRISING THE SAME
The present invention relates to a set of electroactive cathode compounds. More specifically the present invention relates to a set of high capacity lithium-rich NM compounds.
Conventional lithium ion batteries are limited in performance by the capacity of the material used to make the positive electrode (cathode). Lithium rich blends of cathode materials containing blends of nickel manganese cobalt oxide offer a trade-off between safety and energy density. It is understood that charge is stored in the transition metal cations within such cathode materials. It has been suggested that the capacity, and therefore energy density, of cathode materials could be significantly increased if charge could be stored on anions (for example oxygen) reducing the need for such high amounts of heavy transition metal ions. However, a challenge remains to provide a material that can rely on the redox chemistries of both the anions and cations to store charge, and withstand charge/discharge cycles without compromising the safety of the material, or causing undesired redox reactions which would break down the material.
In a first aspect, the present invention provides a compound of the general formula: Li( 4 2x^NixMn^2 x^02 wherein x hiis 3 V3lue greater th in 0.06 3nd less ecjuiil to or less th in 0.4.
It has been found that a compound with an improved capacity can be achieved by reducing the amount of excess lithium and increasing the amount of nickel. The particular compound as defined above exhibits a significantly large increase in capacity due to the degree of oxidation of nickel and also the oxidation of the oxide ions within the lattice. Without wishing to be bound by theory, it is understood that the presence of a particular amount of nickel substitution enables oxygen redox activity and thereby improves the electrochemical capacity of the material.
In addition, the compounds of the present invention exhibit improved stability during electrochemical cycling when compared to the transition metal substituted NMC lithium rich materials of the prior art. The evolution of molecular oxygen is ubiquitous with third row lithium-rich materials transition metal oxides where lithium has been exchanged for some of the transition metal ions (Lii+xMi-x02, where M is Ti, V, Cr, Mn, Fe, Co, Ni, Cu or Zn). These materials generally rely on oxygen redox to improve their charge capacity properties.
Homogenous materials can suffer from molecular oxygen escaping from the crystal structure during cycling due to redox of the oxide anion. In turn, this reduces the capacity and useful lifetime of the material. However, the material of the present invention has improved capacity which is maintained over numerous cycles.
It is understood that when the charge imbalance caused by the removal of a lithium ion is balanced by the removal of an electron from the oxygen anion the resulting oxygen anion is unstable which results in undesired redox reactions and the evolution of molecular oxygen gas during charge cycling. Without wishing to be bound by theory, it is understood that the specific nickel content in the material relative to the lithium content avoids under-bonding within the lattice such that each oxygen anion is still bonded to ~3 cations. A potential solution to this problem might be to encapsulate the cathode layer or part of the cell in a gas impermeable membrane. However, this would add parasitic mass to the cell, thereby reducing the energy density of the resulting battery. However, the chemical approach of the present invention tunes the structure of the lattice using specific amounts of transition metals reduces the generation of oxygen gas from the material without the need to add layers to the cathode material or resulting battery cell.
In examples,, x (i.e. the nickel content) is equal to or greater than 0.12. x may be equal to or greater than 0.2. It has been demonstrated that capacity of the material is significantly improved when x is equal to or is greater than 0.12, and is further improve when the value of x is equal to 0.2. In addition x may be equal to or less than 0.4. It is understood that the capacity of the material declines to expected levels above this threshold value of 0.4. It has been demonstrated that improved capacity is achieved when x is 0.3. More specifically, the value of x could be said to be greater than 0.06 and equal to or less than 0.4. More specifically, the value of x could be said to be equal to or greater than 0.12 and equal to or less than 0.4. Materials within this broad range show an improved capacity. In further examples of improved materials within this broad range, the value of x may be greater than 0.06 and equal to or less than 0.12.
In further examples, the range of x may be a greater than 0.2. It has been demonstrated that material with a stoichiometric nickel content of above 0.2 has the surprising benefit of reducing the amount of molecular oxygen gas evolved during a charge/discharge cycle as well as having an improved charge capacity. More particularly, this range may be defined as x being greater than 0.2 and equal to or less than 0.4. Even more particularly this range could be defined as x
being equal to or greater than 0.3 equal to or less than 0.4. Most particularly, x has a value of either 0.3 or 0.4.
The compound may be defined as having a layered structure. Typically layered structures have been shown to have the highest energy density. When in the layered form, the material can be further defined using the general formula aLi2Mn03 . (l-a)LiNio.5Mno.502 such that a may be less than 0.88, a may also be equal to or greater than 0.2. More particularly, a is equal or greater than 0.2 and less than 0.88. Even more particularly, a is equal or greater than 0.2 and equal to or less than 0.76. Specifically the material may be OALi MnCF . OALiNio.sMno.sCE, or the material may be 0.2Li2MnO3 . 0.8LiNio.5Mno.502. These particular layered structures exhibit improved capacity and a higher degree of stability during a charge/discharge cycle. More specifically, the amount of gas evolved from the layered material during a charge/discharge cycle is reduced.
In a second aspect, the present invention provides an electrode comprising the compound of the first aspect. The electrode may comprise 3 fractions. The first is the compound of the present invention as previously described (in a variety of mass percentages from 60-98%, however, typically 70, 75, 80, 90 and 95%). The second fraction of the electrode comprises electroactive additives such as carbon, for example, Super P (RTM) and Carbon black, which comprises 60-80 % of the mass fraction remaining excluding the first fraction. The third fraction is typically a polymeric binder such as PVDF, PTFE, NaCMC and NaAlginate. In some case additional fractions maybe included and the overall percentages may change. The overall electrochemical performance of the cathode material can be improved by the introduction of electroactive additives, and the structural properties of the resulting cathode can also be improved by adding material that improves cohesion of the cathode material and adhesion of the material to particular substrates.
In a third aspect, the present invention provides an electrochemical cell comprising a positive electrode according to the description above, an electrolyte and a negative electrode (anode).
In order that the present invention may be more readily understood, embodiments of the invention will now be described, by way of example, with reference to the accompanying Figures, in which:
Figure 1 shows powder X-ray Diffraction patterns of the synthesised materials in accordance with Example 1 compared with the calculated patterns of the Cl 2/m and R-3m symmetry lattice shown at the bottom and top of the figure respectively;
Figure 2 shows 6Li MAS-NMR spectra collected on synthesised materials in accordance with Example 1. The spectra are presented in a stacked fashion with increasing nickel doping going from bottom up;
Figure 3 shows first cycle galvanostatic load curves for the synthesised materials in accordance with Example 1; and
Figure 4 shows OEMS analysis of a set of the synthesised materials in accordance with Example 1
The present invention will now be illustrated with reference to the following examples.
Example 1 - Synthesis of the Nickel Substituted Lithium Rich Materials
The Formaldehyde-Resorcinol sol gel synthetic route was employed to synthesise materials with general formula Li ^4 2x NixMn^2 x^02 with x = 0, 0.06, 0.12, 0.2, 0.3 and 0.4 all the reagents ratios were calculated in order to obtain 0.01 mol of the final product.
Stoichiometric amounts of CFFCOOLi^FEO (98.0 %, Sigma Aldrich (RTM)),
(CH3C00)2Mn-4H20 (>99.0 %, Sigma Aldrich (RTM)) and (CH3C00)2Ni-4H20 (99.0 % Sigma Aldrich (RTM) were dissolved in 50 mL of water with 0.25 mmol of CH3C00Li-2H20 (99.0 %, Sigma Aldrich (RTM)) corresponding to 5% moles of lithium with respect to the 0.01 moles of synthesized material. At the same time 0.1 mol of resorcinol (99.0 %, Sigma Aldrich (RTM)) was dissolved in 0.15 mol of formaldehyde (36.5 % w/w solution in water, Fluka (RTM)). Once all the reagents were completely dissolved in their respective solvents, the two solutions were mixed and the mixture was vigorously stirred for one hour. The resulting solution, containing 5 % molar excess of lithium, was subsequently heated in an oil bath at 80 °C until the formation of a homogeneous white gel.
The gel was finally dried at 90 °C overnight and then heat treated at 500 °C for 15 hours and 800 °C for 20 hours.
Example 2 - Structural Analysis and Characterisation of the Nickel Substituted Lithium Rich Materials
The materials according to Example 1 were examined with the two techniques: Powder X-Ray Diffraction (PXRD) which was carried out utilising a Rigaku SmartLab (RTM) equipped with a 9 kW Cu rotating anode; and MAS-NMR spectra were collected on the materials with a Bruker Avance III 400WD magnet.
Figure 1 shows in the right panel: Powder X-ray Diffraction patterns of the synthesised materials compared with the calculated patterns of the Cl2/m and R-3m symmetry lattice shown at the bottom and top of the figure respectively. On the left-hand side the structures for the Cl2/m and R-3m are reported. It is possible to observe the presence of transition metal ordering around lithium in the transition metal layer for the structure with Cl 2/m symmetry. The enlargement shows the details of the reflections associated with the cation ordering in the transition metal layer that is lost as the nickel content increases.
All of the patterns appear to show the major peaks consistent with a close-packed layered structure such as LiTM02 with a R-3m space group. Additional peaks are observed in the range 20-30 2Theta degrees which cannot be assigned to the R-3m space group highlighted in the expanded cut out of the figure. The order derives from the atomic radii and charge density differences between Li+ (0.59 A), Ni+2 (0.69 A) and Mn4+ (0.83 A) and appears the strongest in the structures of the low nickel doped oxides. In the Li2Mn03 end member the 2: 1 ratio of Li:Mn allows for the formation of a perfect honeycomb and therefore has a near perfect fit to the Cl2/m spacegroup.
As Nickel is substituted into the material the long range in-layer ordering is progressively lost. This is mainly due to the substitution of 1 Mn+4 and 2 Li+ for 3 Ni+2 to maintain the charge balance. Since Ni and Li have a similar atomic radius in comparison to
the Ni will preferentially occupy lithium sites. Since the differential scattering cross section for X-rays of nickel and manganese are very close the ordering of the ions becomes less easy to resolve with
X-rays and the peaks in the 20-30 degree range are lost. No presence of extra-peaks due to impurities was observed.
MAS-NMR spectra were collected for the NMR-active isotope 6Li on the whole series of materials. The normalized spectra in Figure 2 show the presence of two signals, centered at 1550 and 780 ppm, corresponding to the two sites for lithium ions in the structure. The resonance centred at 1550 ppm is attributed to lithium belonging to [LiMn6] and [LiMn5Ni]/[LiMn5Li] configurations, within the transition metal layer. On the other hand, the resonance at 780 ppm is due to lithium in the lithium layer.
A progressive loss of sharpness can be observed as the nickel content is increased although the chemical shift (i.e. the peaks positions) remains the same for all the materials. This result could be explained through two main phenomena: the generation of new local environments for lithium as nickel is progressively substituted to lithium and manganese in the lattice; and/or a higher concentration of stacking faults in the materials with high nickel content. In both cases the long- range order is broken leading to a progressive broadening of the NMR resonances.
Example 3 - Electrochemical Analysis of the Nickel Substituted Lithium Rich Materials
The materials according to Example 1 were characterised electrochemically through galvanostatic cycling performed with a BioLogic VMP3 and a Maccor 4600 series potentiostats. All the samples were assembled into stainless steel coincells against metallic lithium and cycled between 2 and 4.8 V vs. Li+/Li for 100 cycles at a current rate of 50 mAg-l. The electrolyte employed was LP30 (a 1M solution of LiPF6 in 1 ; 1 w/w ratio of EC;DMC).
Figure 3 shows the potential curves during the charge and subsequent discharge of the first cycle for each material according to Example 1. All the samples present a high voltage plateau of different lengths centred on 4.5 V vs. Li+/Li°, whereas the presence of a sloped region at the beginning of the charge progressively increases in length with the amount of nickel doping. The extension of this region may be attributed to the oxidation of nickel from Ni+2 toward Ni+4. appears to be in good agreement with the amount of lithium (i.e. charge) that would be extracted accounting for solely the nickel redox activity. Hence, as expected, Li2Mn03 does not show any
pre-plateau region whilst the Li ^4 2x NixMn^2 ^02 x = 0.3 doped oxide presents more than 150 mAhg 1.
During the first discharge, none of the materials show the presence of a reversible plateau, indicating a difference in the thermodynamic pathways followed during the extraction (charge) and insertion (discharge) of lithium ions from/in the lattice of each sample.
For all the material according to Example 1 the first cycle presents the lowest coulombic efficiency value due to the presence of the high potential plateau which is not reversible. The coulombic efficiencies appear to quickly improve from the first cycle values, around 60-70%, to values higher than 98% within the first five cycles. However, with this regard Li2Mn03 and Li ( 4 2x NixMn^2 j02 with x = 0.06 are an exception, showing an initial loss in efficiency. When the nickel substitution increases such that x= 0.12 a significant improvement in the electrochemical performance is seen, indicating that there is a change in the nature of the charge storage mechanism.
Example 4 - Gas Evolution During the First Cycle of the Nickel Substituted Lithium Rich Materials
One pellet of each material according to Example 1 was assembled into a Swagelok (RTM) test cell specifically machined to carry out an Operando Electrochemical Mass Spectrometry (OEMS) measurement. The mass spectrometry measurement involved in the OEMS experiment was performed with a Thermo-Fisher quadrupolar mass spectrometer. OEMS was performed on the set of materials in order to get an insight on the origin of the extra-capacity that is observed during the first cycle.
Figure 4(a), (b), and (c) shows OEMS analysis of the nickel doped Li ^4 2x NixMn^2 c^02 for x=
0.2, 0.3 and 0.4, respectively. Each graph shows the galvanostatic curve during the first two cycles (top lines in each graph), the oxygen trace, and the carbon dioxide trace for each material. The right y-axis represents the electrode potential while the left y-axis the gas release rate expressed as moles of gas per minute per mole of active material, both axis reported as function of lithium equivalents. Argon was used as carrier gas with a flux rate of 0.7 mL/min and the electrode was cycled against metallic lithium at a rate of 15 mAg 1 between 2 and 4.8 V vs.
Li+/Li° for all the materials. The electrolyte employed was a 1M solution of LiPF6 in propylene carbonate.
C02 and 02 were the only gaseous species detected for all the samples and a clear trend appears from Figure 4, with a progressively lower amount of gas released as the amount of dopant nickel increases.
CO2 is detected first in all cases, peaking at the beginning of the high potential plateau (around 4.5 V vs. Li+/Li°) region and progressively decreasing until the end of charge.
The amount of CO2 decreases in line with the increase in nickel in content but is never eliminated. On the other hand, molecular oxygen appears to be released in a spike-like fashion that reaches its maximum towards the end of charge for the materials of the present invention. In the case of the high Ni substitution where x = 0.4 it has been shown that there is almost complete suppression of O2 and a strong reduction in the amount of detected CO2 (Figure 4(c)). This result is suggestive of the important role played by nickel as in stabilizing the oxide structures at high potentials by reducing the oxygen loss process.
Claims
1. A compound of the general formula:
wherein x has a value greater than 0.06 and equal to or less than 0.4.
2. The compound according to claim 1, wherein x has a value equal to or greater than 0.06 and equal to or less than 0.12.
3. The compound according to claim 1 or claim 2, wherein x has a value greater than 0.3 and equal to or less than 0.4.
4. The compound according to claim 1, wherein x is equal to 0.3.
5. The compound according to claim 1, wherein x is equal to 0.4.
6. The compound according to claim 1, wherein the compound is a cathode material having a layered structure.
7. The compound according to claim 6, wherein the layered structure is expressed as the general formula: aLi2Mn03 . (l-a)LiNio.5Mno.502 wherein a is less than 0.88.
8. The compound according to claim 7, wherein a is equal or greater than 0.2 and or less than 0.76.
9. The compound according to claim 7, wherein the material is 0.4Li2MnO3
0.6LiNio.5Mno.502.
10. The compound according to claim 7, wherein the material is 0.2Li2MnO3
0.8LiNio.5Mno.502.
11. An electrode comprising the compound according to any one of previous claims 1 to 10.
12. The electrode according to claim 11, wherein the electrode comprises electroactive additives and/or a polymeric binder.
13. The electrode according to claim 12, wherein the electroactive additive is selected from at least one of carbon or carbon black.
14. The electrode according to claim 12 or claim 13, wherein the polymeric binder is selected from at least one of PVDF, PTFE, NaCMC or NaAlginate.
15. An electrochemical cell comprising a positive electrode according to any one of claims 11 to 14, an electrolyte, and a negative electrode.
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| GB1721172.3A GB2569387B (en) | 2017-12-18 | 2017-12-18 | Electrode |
| PCT/GB2018/053660 WO2019122848A1 (en) | 2017-12-18 | 2018-12-18 | A lithium, nickel, manganese mixed oxide compound and electrode comprising the same |
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| Country | Link |
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| US (1) | US11616229B2 (en) |
| EP (1) | EP3728132A1 (en) |
| JP (1) | JP6985528B2 (en) |
| KR (1) | KR102401390B1 (en) |
| CN (2) | CN118373460A (en) |
| GB (1) | GB2569387B (en) |
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| GB2566472B (en) | 2017-09-14 | 2020-03-04 | Dyson Technology Ltd | Magnesium salts |
| GB2566473B (en) | 2017-09-14 | 2020-03-04 | Dyson Technology Ltd | Magnesium salts |
| GB2569390A (en) | 2017-12-18 | 2019-06-19 | Dyson Technology Ltd | Compound |
| GB2569388B (en) | 2017-12-18 | 2022-02-02 | Dyson Technology Ltd | Compound |
| GB2569392B (en) | 2017-12-18 | 2022-01-26 | Dyson Technology Ltd | Use of aluminium in a cathode material |
| WO2024085629A1 (en) * | 2022-10-18 | 2024-04-25 | 주식회사 엘지에너지솔루션 | Positive electrode and lithium secondary battery including same |
| JP7829470B2 (en) * | 2022-12-09 | 2026-03-13 | 本田技研工業株式会社 | Lithium nickel manganese composite oxide, positive electrode active material for lithium secondary battery, lithium secondary battery, and method for producing lithium nickel manganese composite oxide |
Family Cites Families (139)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| US3761500A (en) | 1970-05-26 | 1973-09-25 | Owens Illinois Inc | Liquid double alkoxides |
| BE785737A (en) | 1971-07-05 | 1973-01-02 | Ici Ltd | METAL OXIDE FIBERS |
| US4047289A (en) | 1974-10-15 | 1977-09-13 | Polaroid Corporation | Method for forming a slurry battery cell |
| US3993508A (en) | 1975-06-20 | 1976-11-23 | Polaroid Corporation | Method for manufacturing flat batteries |
| US4299986A (en) | 1978-11-15 | 1981-11-10 | Anic, S.P.A. | Method of reducing organic compounds with mixed hydride alkoxy derivatives of aluminum and alkaline earth metals |
| IT1112971B (en) | 1979-04-04 | 1986-01-20 | Anic Spa | PROCESS FOR THE SYNTHESIS OF ALKALINE-TERROSE METAL ALCOSSIALANATES |
| JPS5796472A (en) | 1980-12-06 | 1982-06-15 | Hitachi Maxell Ltd | Manufacture of solid electrolytic cell |
| GB2128604A (en) | 1982-10-19 | 1984-05-02 | Harold Garton Emblem | Aluminium alkoxide derivates |
| JPS6421870A (en) | 1987-07-15 | 1989-01-25 | Matsushita Electric Industrial Co Ltd | Manufacture of solid electrolyte cell |
| FR2657552B1 (en) | 1990-01-30 | 1994-10-21 | Elf Aquitaine | METHOD AND DEVICE FOR CUTTING A MULTILAYER ASSEMBLY CONSISTING OF A PLURALITY OF THIN FILMS. |
| US5136046A (en) | 1990-09-28 | 1992-08-04 | Ethyl Corporation | Preparation of amine alanes |
| JPH04269721A (en) | 1991-02-26 | 1992-09-25 | Sekisui Fine Chem Kk | Polymer beads having modified surface and its production |
| DE4227720C2 (en) | 1991-09-18 | 1998-05-20 | Fraunhofer Ges Forschung | Process for the production of coatings from spinel and use of the carrier produced thereafter |
| US5411592A (en) | 1994-06-06 | 1995-05-02 | Ovonic Battery Company, Inc. | Apparatus for deposition of thin-film, solid state batteries |
| US5718989A (en) | 1995-12-29 | 1998-02-17 | Japan Storage Battery Co., Ltd. | Positive electrode active material for lithium secondary battery |
| JP3897387B2 (en) | 1995-12-29 | 2007-03-22 | 株式会社ジーエス・ユアサコーポレーション | Method for producing positive electrode active material for lithium secondary battery |
| US6616714B1 (en) | 1998-09-14 | 2003-09-09 | Hydro-Quebec | Process for cutting polymer electrolyte multi-layer batteries and batteries obtained thereby |
| JP4701463B2 (en) | 1998-11-05 | 2011-06-15 | パナソニック株式会社 | Method for removing active material from battery electrode plate |
| US20020110733A1 (en) | 2000-08-07 | 2002-08-15 | Johnson Lonnie G. | Systems and methods for producing multilayer thin film energy storage devices |
| US6660432B2 (en) | 2000-09-14 | 2003-12-09 | Ilion Technology Corporation | Lithiated oxide materials and methods of manufacture |
| JP4082214B2 (en) | 2000-11-20 | 2008-04-30 | 中央電気工業株式会社 | Nonaqueous electrolyte secondary battery and its positive electrode active material |
| FI115098B (en) | 2000-12-27 | 2005-02-28 | Nokia Corp | Authentication in data communication |
| JP2002343342A (en) | 2001-05-22 | 2002-11-29 | Matsushita Electric Ind Co Ltd | Secondary battery electrode and method of manufacturing the same |
| JP2003226955A (en) | 2002-02-05 | 2003-08-15 | Yaskawa Electric Corp | Surface modification method and apparatus |
| US6923837B2 (en) | 2002-02-26 | 2005-08-02 | Lithium Power Technologies, Inc. | Consecutively wound or stacked battery cells |
| CN1458706A (en) | 2002-05-15 | 2003-11-26 | 中国科学院成都有机化学研究所 | Lithium ion accumulator positive electrode material and synthetic method |
| CN1464573A (en) | 2002-06-27 | 2003-12-31 | 中国科学院成都有机化学研究所 | Li ion accumulator anode material and method for making the same |
| US7205072B2 (en) | 2002-11-01 | 2007-04-17 | The University Of Chicago | Layered cathode materials for lithium ion rechargeable batteries |
| JP5236878B2 (en) | 2003-05-28 | 2013-07-17 | ナショナル リサーチ カウンシル オブ カナダ | Lithium oxide electrodes for lithium cells and batteries |
| KR100560540B1 (en) | 2003-07-18 | 2006-03-15 | 삼성에스디아이 주식회사 | Cathode active material for lithium secondary battery, manufacturing method thereof, and lithium secondary battery comprising same |
| JP2005100947A (en) | 2003-08-21 | 2005-04-14 | Mitsubishi Materials Corp | Cathode material for non-aqueous secondary battery, method for producing the same, and non-aqueous secondary battery using the same |
| FR2860922B1 (en) | 2003-10-10 | 2009-07-31 | Cit Alcatel | ELECTROCHEMICALLY ACTIVE MATERIAL FOR LITHIUM RECHARGEABLE ELECTROCHEMICAL ELECTROCHEMICAL GENERATOR POSITIVE ELECTRODE |
| JP4168402B2 (en) | 2003-10-24 | 2008-10-22 | 日立金属株式会社 | Positive electrode active material for lithium secondary battery, method for producing the same, and non-aqueous lithium secondary battery |
| FR2874128B1 (en) | 2004-08-03 | 2006-10-13 | Commissariat Energie Atomique | MICROBATTERY COMPRISING THROUGH CONNECTIONS AND METHOD OF MAKING SUCH A MICROBATTERY |
| US7276724B2 (en) | 2005-01-20 | 2007-10-02 | Nanosolar, Inc. | Series interconnected optoelectronic device module assembly |
| JP5072242B2 (en) | 2005-03-17 | 2012-11-14 | パナソニック株式会社 | Non-aqueous electrolyte secondary battery |
| FR2890241B1 (en) | 2005-08-25 | 2009-05-22 | Commissariat Energie Atomique | HIGH SPEED SPINELLE STRUCTURE POSITIVE ELECTRODE MATERIAL BASED ON NICKEL AND MANGANESE FOR LITHIUM ACCUMULATORS |
| SG173372A1 (en) | 2006-07-18 | 2011-08-29 | Cymbet Corp | Method and apparatus for solid-state microbattery photolithographic manufacture, singulation and passivation |
| WO2008086041A1 (en) | 2007-01-10 | 2008-07-17 | Nanoexa, Inc. | Lithium batteries with nano-composite positive electrode material |
| KR20080079058A (en) | 2007-02-26 | 2008-08-29 | 엘지전자 주식회사 | Thin-film solar cell module and its manufacturing method |
| US7862627B2 (en) | 2007-04-27 | 2011-01-04 | Front Edge Technology, Inc. | Thin film battery substrate cutting and fabrication process |
| KR100927244B1 (en) | 2007-10-13 | 2009-11-16 | 주식회사 엘지화학 | Cathode Active Material for Lithium Secondary Battery |
| US8168318B2 (en) | 2007-10-25 | 2012-05-01 | Applied Materials, Inc. | Method for high volume manufacturing of thin film batteries |
| EP2214234B1 (en) | 2007-11-12 | 2014-01-08 | Toda Kogyo Corporation | Li-ni-based composite oxide particle powder for rechargeable battery with nonaqueous elctrolyte, process for producing the powder, and rechargeable battery with nonaqueous electrolyte |
| KR101323126B1 (en) | 2007-11-12 | 2013-10-30 | 가부시키가이샤 지에스 유아사 | Process for producing lithium rechargeable battery |
| JP5007677B2 (en) | 2008-01-31 | 2012-08-22 | 日本ケミコン株式会社 | Solid electrolytic capacitor and manufacturing method thereof |
| JP5120026B2 (en) | 2008-03-31 | 2013-01-16 | 日本ケミコン株式会社 | Solid electrolytic capacitor and manufacturing method thereof |
| US8153301B2 (en) | 2008-07-21 | 2012-04-10 | 3M Innovative Properties Company | Cathode compositions for lithium-ion electrochemical cells |
| US20110291043A1 (en) | 2008-09-24 | 2011-12-01 | The Regents Of The University Of California | Aluminum Substituted Mixed Transition Metal Oxide Cathode Materials for Lithium Ion Batteries |
| FR2937633B1 (en) | 2008-10-24 | 2010-11-19 | Saft Groupe Sa | POSITIVE ELECTRODE MATERIAL FOR LITHIUM ION BATTERY |
| FR2943181B1 (en) | 2009-03-16 | 2011-05-13 | Commissariat Energie Atomique | LITHIUM MICROBATTERIUM AND METHOD FOR MANUFACTURING THE SAME |
| JP5247570B2 (en) | 2009-04-14 | 2013-07-24 | 株式会社アルバック | Thin film lithium secondary battery manufacturing apparatus and thin film lithium secondary battery manufacturing method |
| CN101562245B (en) * | 2009-05-22 | 2011-01-19 | 北京工业大学 | Method for modifying high-rate lithium-rich anode material |
| KR20110019574A (en) | 2009-08-20 | 2011-02-28 | 삼성에스디아이 주식회사 | Cathode active material, positive electrode and lithium battery using same, and method for manufacturing same |
| US8464419B2 (en) | 2009-09-22 | 2013-06-18 | Applied Materials, Inc. | Methods of and factories for thin-film battery manufacturing |
| US8580332B2 (en) | 2009-09-22 | 2013-11-12 | Applied Materials, Inc. | Thin-film battery methods for complexity reduction |
| EP2483955A1 (en) | 2009-09-30 | 2012-08-08 | Solvay Sa | Positive active electrode material for lithium secondary battery, process for preparing the same and lithium secondary battery |
| CN101694876A (en) | 2009-10-22 | 2010-04-14 | 江西江特锂电池材料有限公司 | Lithium-rich manganese-based anode material and preparation method thereof |
| CN102598371A (en) | 2009-10-29 | 2012-07-18 | Agc清美化学股份有限公司 | Process for production of positive electrode material for lithium ion secondary battery |
| US9843041B2 (en) | 2009-11-11 | 2017-12-12 | Zenlabs Energy, Inc. | Coated positive electrode materials for lithium ion batteries |
| JP2011108603A (en) | 2009-11-20 | 2011-06-02 | Ulvac Japan Ltd | Thin film lithium secondary battery, and forming method of thin film lithium secondary battery |
| EP2507858A1 (en) | 2009-11-30 | 2012-10-10 | OC Oerlikon Balzers AG | Lithium ion battery and method for manufacturing of such battery |
| US20120225199A1 (en) * | 2010-02-05 | 2012-09-06 | International Battery, Inc. | Current collector coating for li-ion battery cells using aqueous binder |
| JP5528480B2 (en) | 2010-02-09 | 2014-06-25 | 住友金属鉱山株式会社 | Positive electrode active material for non-aqueous electrolyte secondary battery, method for producing the same, and non-aqueous electrolyte secondary battery using the positive electrode active material |
| US20130040201A1 (en) | 2010-03-03 | 2013-02-14 | Arumugam Manthiram | High capacity layered oxide cathods with enhanced rate capability |
| DE102010029282A1 (en) | 2010-05-25 | 2011-12-01 | Robert Bosch Gmbh | Method and device for producing a thin-film battery |
| WO2012054312A1 (en) | 2010-10-18 | 2012-04-26 | Microvast, Inc. | Continuous prismatic cell stacking system and method |
| CN102054986B (en) | 2010-11-16 | 2013-04-10 | 中国科学院宁波材料技术与工程研究所 | Ultrahigh-capacity lithium ion battery anode material prepared by microwave method and preparation method thereof |
| DE102010044080A1 (en) | 2010-11-17 | 2012-05-24 | Varta Microbattery Gmbh | Production process for electrodes |
| WO2012067675A1 (en) * | 2010-11-17 | 2012-05-24 | Uchicago Argonne, Llc, Operator Of Argonne National Laboratory | Electrode structures and surfaces for li batteries |
| CN102074700B (en) | 2010-12-09 | 2013-03-27 | 深圳市贝特瑞新能源材料股份有限公司 | Laminated ternary positive material and preparation method thereof |
| US9130238B2 (en) | 2011-06-10 | 2015-09-08 | Applied Materials, Inc. | Methods of and hybrid factories for thin-film battery manufacturing |
| CN103608967B (en) | 2011-06-17 | 2017-05-10 | 应用材料公司 | Thin-film battery fabrication using maskless electrolyte deposition |
| WO2013106082A2 (en) | 2011-06-17 | 2013-07-18 | Applied Materials, Inc. | Mask-less fabrication of thin film batteries |
| JP6052176B2 (en) | 2011-08-05 | 2016-12-27 | 旭硝子株式会社 | Positive electrode active material for lithium ion secondary battery |
| WO2013035519A1 (en) | 2011-09-09 | 2013-03-14 | 株式会社 村田製作所 | All solid-state battery and method of manufacturing same |
| WO2013044114A1 (en) | 2011-09-21 | 2013-03-28 | Itn Energy Systems, Inc. | Architectures for solid state batteries |
| KR101920485B1 (en) | 2011-09-26 | 2018-11-21 | 전자부품연구원 | Positive active material precursor, positive active material for lithium secondary battery, preparation method thereof and lithium secondary battery comprising the same |
| KR20130033154A (en) | 2011-09-26 | 2013-04-03 | 전자부품연구원 | Positive active material, preparation method thereof and lithium secondary battery comprising the same |
| CN103035900A (en) | 2011-10-10 | 2013-04-10 | 北大先行科技产业有限公司 | High-capacity lithium-rich cathode material and preparation method thereof |
| WO2013118659A1 (en) * | 2012-02-06 | 2013-08-15 | 日本電気株式会社 | Lithium-ion battery and method for producing same |
| JP5601337B2 (en) | 2012-03-27 | 2014-10-08 | Tdk株式会社 | Active material and lithium ion secondary battery |
| WO2013146723A1 (en) | 2012-03-27 | 2013-10-03 | Tdk株式会社 | Active material for lithium ion secondary batteries, and lithium ion secondary battery |
| DE102012208010A1 (en) | 2012-05-14 | 2013-11-14 | Robert Bosch Gmbh | Method for producing a power cell and device for carrying it out |
| CN103918106B (en) | 2012-05-30 | 2017-06-13 | Lg 化学株式会社 | Method with the internuncial electrode assemblie of excellent electrode tab, the battery unit including electrode assemblie and device and manufacture electrode assemblie |
| TWI549336B (en) | 2012-06-01 | 2016-09-11 | 輔仁大學學校財團法人輔仁大學 | Lithium nickel cobalt manganese cathode material powder |
| CN103490094B (en) | 2012-06-11 | 2016-02-10 | 丰田自动车株式会社 | Electrolyte for magnesium cell and the magnesium cell containing this electrolyte |
| FR2993101B1 (en) | 2012-07-06 | 2015-07-17 | Commissariat Energie Atomique | METHOD FOR ASSEMBLING AND ENCAPSULATING LITHIUM MICROBATTERIES AND MICROBATTERIES THUS OBTAINED |
| CN102881873B (en) * | 2012-09-28 | 2015-05-13 | 广东中科信泰新能源有限公司 | Layered lithium-rich material preparation method |
| JP5861606B2 (en) | 2012-09-28 | 2016-02-16 | ソニー株式会社 | Electrolytic solution, method for producing electrolytic solution, and electrochemical device |
| US9325030B2 (en) | 2012-09-28 | 2016-04-26 | Savannah River Nuclear Solutions, Llc | High energy density battery based on complex hydrides |
| EP2936608B1 (en) | 2012-12-19 | 2018-10-03 | Applied Materials, Inc. | Mask-less fabrication of vertical thin film batteries |
| KR20140081468A (en) | 2012-12-21 | 2014-07-01 | 삼성에스디아이 주식회사 | Electrolyte additive and electrolyte including the same and lithium rechargeble battery including the electrolyte |
| JP2014146458A (en) | 2013-01-28 | 2014-08-14 | Toyota Motor Corp | All-solid-state battery and battery system |
| FR3002695B1 (en) | 2013-02-28 | 2021-04-02 | I Ten | PROCESS FOR MANUFACTURING AN ENTIRELY SOLID MONOLITHIC BATTERY |
| US9437863B2 (en) | 2013-03-05 | 2016-09-06 | GM Global Technologies Operations LLC | Surface coating method and a method for reducing irreversible capacity loss of a lithium rich transitional oxide electrode |
| CN103311513B (en) * | 2013-06-03 | 2017-04-05 | 青岛乾运高科新材料股份有限公司 | A kind of high-performance layed solid-solution lithium electricity positive electrode and preparation method thereof |
| US20150010872A1 (en) | 2013-07-03 | 2015-01-08 | Edmund S. Schindler | Hot Surface Igniter With Fuel Assist |
| KR101794097B1 (en) | 2013-07-03 | 2017-11-06 | 삼성에스디아이 주식회사 | Positive active material for rechargeable lithium battery, method of preparing the same, and positive electrode for rechargeable lithium battery and rechargeable lithium battery including the same |
| EP2827430A1 (en) | 2013-07-19 | 2015-01-21 | Basf Se | Use of lithium alkoxyborates and lithium alkoxyaluminates as conducting salts in electrolytes of lithium ion batteries |
| CN103545519B (en) * | 2013-07-19 | 2015-09-09 | 北京科技大学 | A carbon-coated lithium-rich positive electrode material and preparation method thereof |
| WO2015007586A1 (en) | 2013-07-19 | 2015-01-22 | Basf Se | Use of lithium alkoxyborates and lithium alkoxyaluminates as conducting salts in electrolytes of lithium sulphur batteries |
| FR3009134B1 (en) | 2013-07-29 | 2017-09-15 | Commissariat Energie Atomique | POSITIVE ELECTRODE MATERIALS OF LITHIUM BATTERY BASED ON LAMELLAR OXIDE SURLITHIE |
| US20150050522A1 (en) | 2013-08-14 | 2015-02-19 | Arumugam Manthiram | Lithium-rich layered oxide cathodes and rechargeable batteries containing lithium-rich layered oxides |
| KR20160043979A (en) | 2013-08-19 | 2016-04-22 | 다우 글로벌 테크놀로지스 엘엘씨 | Improved lithium metal oxide rich cathode materials and method to make them |
| KR102170482B1 (en) | 2013-09-13 | 2020-10-28 | 미쓰이금속광업주식회사 | Positive electrode material for lithium-ion cell |
| KR101738734B1 (en) | 2013-09-26 | 2017-06-08 | 주식회사 엘지화학 | Pouch type secondary battery |
| KR101619604B1 (en) | 2013-09-26 | 2016-05-10 | 주식회사 엘지화학 | Method of manufacturing electrode assembly and secondary battery |
| JP5809772B2 (en) | 2013-10-10 | 2015-11-11 | 三井金属鉱業株式会社 | Method for producing lithium-rich layered lithium metal composite oxide |
| US20150180031A1 (en) | 2013-12-23 | 2015-06-25 | Uchicago Argonne, Llc | Lithium metal oxide electrodes for lithium batteries |
| DE102014100574A1 (en) | 2014-01-20 | 2015-07-23 | Teamtechnik Maschinen Und Anlagen Gmbh | Battery cell connecting |
| US10290869B2 (en) | 2014-03-20 | 2019-05-14 | Washington University | Doped lithium-rich layered composite cathode materials |
| US9748582B2 (en) | 2014-03-31 | 2017-08-29 | X Development Llc | Forming an interconnection for solid-state batteries |
| CN103943844B (en) | 2014-04-04 | 2016-08-17 | 西安交通大学 | A kind of without cobalt lithium-rich manganese-based anode material and its preparation method and application |
| JP6807307B2 (en) | 2014-07-03 | 2021-01-06 | シーエスアイアールCsir | Manufacture of layered lithium-manganese-nickel-cobalt oxide materials |
| CN104241633B (en) | 2014-09-11 | 2017-09-29 | 北大先行科技产业有限公司 | A kind of anode material for lithium-ion batteries of grade doping and preparation method thereof |
| EP3238290B1 (en) | 2014-12-23 | 2024-05-01 | QuantumScape Battery, Inc. | Lithium rich nickel manganese cobalt oxide (lr-nmc) |
| JP6587804B2 (en) | 2015-01-23 | 2019-10-09 | 住友化学株式会社 | Positive electrode active material, positive electrode for lithium ion secondary battery and lithium ion secondary battery |
| KR20160091172A (en) | 2015-01-23 | 2016-08-02 | 주식회사 포스코이에스엠 | Manufacturing method of positive active material containing reduced residual lithium and positive active material manufactured by the same |
| JP6655943B2 (en) | 2015-02-27 | 2020-03-04 | パナソニック株式会社 | Positive active material for non-aqueous electrolyte secondary battery and non-aqueous electrolyte secondary battery |
| US20160294010A1 (en) | 2015-03-31 | 2016-10-06 | The Trustees Of Princeton University | Electrolytes for magnesium-ion batteries |
| EP3093272A1 (en) | 2015-05-13 | 2016-11-16 | Basf Se | Cathode materials for lithium ion batteries, process for preparing the same and their use in electrochemical cells |
| US9960458B2 (en) | 2015-06-23 | 2018-05-01 | Quantumscape Corporation | Battery systems having multiple independently controlled sets of battery cells |
| US10923707B2 (en) * | 2015-06-26 | 2021-02-16 | Florida State University Research Foundation, Inc. | Dry process method for producing electrodes for electrochemical devices and electrodes for electrochemical devices |
| KR101728826B1 (en) | 2015-07-14 | 2017-04-20 | 울산과학기술원 | Electrolyte for magnesium rechargeable battery, and magnesium rechargeable battery including the same |
| KR102010014B1 (en) | 2015-08-31 | 2019-08-12 | 주식회사 엘지화학 | Lithium secondary battery and operating method thereof |
| WO2017047280A1 (en) | 2015-09-16 | 2017-03-23 | 日本電気株式会社 | Lithium secondary battery and method for producing same |
| US10978709B2 (en) * | 2015-11-16 | 2021-04-13 | The Regents Of The University Of California | Lithium-excess cathode material and co-precipitation formation method |
| GB2548361B (en) | 2016-03-15 | 2020-12-02 | Dyson Technology Ltd | Method of fabricating an energy storage device |
| CN105742607A (en) | 2016-04-15 | 2016-07-06 | 东华大学 | Method for improving initial coulomb efficiency of lithium-rich cathode material |
| CN105810934B (en) | 2016-05-09 | 2019-07-05 | 北京工业大学 | A kind of stabilizing lithium rich layered oxide material crystalline domain structure method |
| CN106410186B (en) * | 2016-11-17 | 2019-01-25 | 天津理工大学 | A kind of preparation method and application of lithium-rich layered oxide cathode material |
| GB2566473B (en) | 2017-09-14 | 2020-03-04 | Dyson Technology Ltd | Magnesium salts |
| GB2566472B (en) | 2017-09-14 | 2020-03-04 | Dyson Technology Ltd | Magnesium salts |
| GB2569391A (en) * | 2017-12-18 | 2019-06-19 | Dyson Technology Ltd | Compound |
| GB2569392B (en) | 2017-12-18 | 2022-01-26 | Dyson Technology Ltd | Use of aluminium in a cathode material |
| GB2569388B (en) * | 2017-12-18 | 2022-02-02 | Dyson Technology Ltd | Compound |
| GB2569390A (en) | 2017-12-18 | 2019-06-19 | Dyson Technology Ltd | Compound |
| GB2569389B (en) | 2017-12-18 | 2022-02-09 | Dyson Technology Ltd | Compound |
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